Calculus: Early Transcendentals 9th Edition

Published by Cengage Learning
ISBN 10: 1337613924
ISBN 13: 978-1-33761-392-7

Chapter 1 - Section 1.1 - Four Ways to Represent a Function - 1.1 Exercises - Page 20: 65

Answer

Area = $10A-A^{2}$, $0\lt A\lt10$

Work Step by Step

Let the lengths of the sides be $A$ and $B$, where $A\neq B$ Perimeter = $2A+2B=20$ $A+B=10, B=10-A$ Area = $AB=A(10-A)=10A-A^{2}$ $\because$ Lengths are positive $A\gt0,$ $B=10-A\gt0, A\lt10$ $\therefore 0\lt A\lt10$
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